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shouldn't be

if(a[mid] < t)return BS(mid+1,high);
else return BS(low,mid);

the same as

if(a[mid] > t)return BS(low,mid-1);
else return BS(mid,high);

But the second one doesn't work, why?

Edit: I mean by doesn't work, that the code doesn't reach the base case.

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2  
Define "doesn't work". –  Dan W Jun 26 '13 at 19:52
    
Are those one-based or zero-based indices? –  larsmans Jun 26 '13 at 20:05
    
zero-based indices. –  Mahmoud Maged Jun 26 '13 at 20:22
1  
Are you saying that it goes into an infinite loop? Why not post the entire function? –  Jim Mischel Jun 26 '13 at 21:38

1 Answer 1

up vote 3 down vote accepted

In calculating mid as (low+high)/2 it uses integer division.

In Bref. By example

Let low = 3 , high = 4 , a[3] >= t

so by calling BS(low,high) mid = (3+4)/2 = 3 #Integer_division

Since a[mid] >=t So return BS(mid,high) which is equivalent to BS(low,high) #infinite_loop

The solution use the integer division in your side So the code should be like

if(a[mid] >= t)return BS(low,mid);
else return BS(mid+1,high);

Think this will solve your issue.

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